Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 50 checked references that resolve
resolves10.1039/C4MB00126EElementary mode analysis reveals that
<i>Clostridium acetobutylicum</i>
modulates its metabolic strategy under external stress
resolves10.1186/1471-2164-13-349Pleiotropic functions of catabolite control protein CcpA in Butanol-producing Clostridium acetobutylicum
resolves10.1038/nrmicro1767Inventing the dynamo machine: the evolution of the F-type and V-type ATPases
resolves10.1073/pnas.0337684100Engineering the metabolism of
<i>Escherichia coli</i>
W3110 for the conversion of sugar to redox-neutral and oxidized products: Homoacetate production
resolves10.1128/AEM.68.9.4274-4282.2002Expression of Genes Encoding F
<sub>1</sub>
-ATPase Results in Uncoupling of Glycolysis from Biomass Production in
<i>Lactococcus lactis</i>
resolves10.1016/j.ymben.2008.06.001Co-factor engineering in lactobacilli: Effects of uncoupled ATPase activity on metabolic fluxes in Lactobacillus (L.) plantarum and L. sakei
resolves10.1007/s002530100778H + -ATPase defect in Corynebacterium glutamicum abolishes glutamic acid production with enhancement of glucose consumption rate
resolves10.1038/sj.jim.7000191Fermentation characterization and flux analysis of recombinant strains of Clostridium acetobutylicum with an inactivated solR gene
resolves10.1016/j.ymben.2011.01.009Engineering the robustness of Clostridium acetobutylicum by introducing glutathione biosynthetic capability
resolves10.1128/mBio.00314-12Enhanced Butanol Production Obtained by Reinforcing the Direct Butanol-Forming Route in Clostridium acetobutylicum
resolves10.1128/AEM.03327-13Metabolic Changes in Klebsiella oxytoca in Response to Low Oxidoreduction Potential, as Revealed by Comparative Proteomic Profiling Integrated with Flux Balance Analysis
resolves10.1128/mBio.01808-15A Quantitative System-Scale Characterization of the Metabolism of Clostridium acetobutylicum
resolves10.1038/srep28189Elucidating the contributions of multiple aldehyde/alcohol dehydrogenases to butanol and ethanol production in Clostridium acetobutylicum
resolves10.1080/21655979.2016.1148223Activation of futile cycles as an approach to increase ethanol yield during glucose fermentation in<i>Saccharomyces cerevisiae</i>
resolves10.1002/bit.25623Enforced ATP futile cycling increases specific productivity and yield of anaerobic lactate production in <i>Escherichia coli</i>
resolves10.1128/aem.58.12.3896-3902.1992Physiological Events in
<i>Clostridium acetobutylicum</i>
during the Shift from Acidogenesis to Solventogenesis in Continuous Culture and Presentation of a Model for Shift Induction
resolves10.1128/aem.52.1.86-91.1986Intracellular Conditions Required for Initiation of Solvent Production by
<i>Clostridium acetobutylicum</i>
resolves10.1128/AEM.01835-10Formic Acid Triggers the “Acid Crash” of Acetone-Butanol-Ethanol Fermentation by
<i>Clostridium acetobutylicum</i>
resolves10.1017/S0022029900007196543. Methods for the growth and enumeration of anaerobic spore-formers from cheese, with observations on the effect of nisin
resolves10.1038/nbt0292-190Expression of Cloned Homologous Fermentative Genes in Clostridium Acetobutylicum ATCC 824
resolves10.1128/aem.59.4.1077-1081.1993In vivo methylation in Escherichia coli by the Bacillus subtilis phage phi 3T I methyltransferase to protect plasmids from restriction upon transformation of Clostridium acetobutylicum ATCC 824
resolves10.1186/1754-6834-5-44Introducing a single secondary alcohol dehydrogenase into butanol-tolerant Clostridium acetobutylicum Rh8 switches ABE fermentation to high level IBE fermentation
resolves10.1007/s00253-011-3570-2Controlling the oxidoreduction potential of the culture of Clostridium acetobutylicum leads to an earlier initiation of solventogenesis, thus increasing solvent productivity
resolves10.1016/j.ab.2009.02.017An ion-pair reversed-phase HPLC method for determination of fresh tissue adenine nucleotides avoiding freeze–thaw degradation of ATP
resolves10.1093/nar/gkv1164The MetaCyc database of metabolic pathways and enzymes and the BioCyc collection of pathway/genome databases
resolves10.1186/s13068-014-0144-4Capturing the response of Clostridium acetobutylicumto chemical stressors using a regulated genome-scale metabolic model
resolves10.1007/s00253-008-1654-4Genome-scale reconstruction and in silico analysis of the Clostridium acetobutylicum ATCC 824 metabolic network
resolves10.1128/aem.48.4.764-770.1984Control of Carbon and Electron Flow in
<i>Clostridium acetobutylicum</i>
Fermentations: Utilization of Carbon Monoxide to Inhibit Hydrogen Production and to Enhance Butanol Yields
resolves10.1186/s13568-018-0615-2Diauxic growth of Clostridium acetobutylicum ATCC 824 when grown on mixtures of glucose and cellobiose
resolves10.1038/nprot.2011.308Quantitative prediction of cellular metabolism with constraint-based models: the COBRA Toolbox v2.0
resolves10.1186/1752-0509-3-117Flux-sum analysis: a metabolite-centric approach for understanding the metabolic network
The 4 references without a DOI — listed, not checked
no DOI — not checkedBerg JM, Tymoczko JL, Stryer L. The glycolytic pathway is tightly controlled. In: Freeman WH (ed) Biochemistry, 5th edn, Section 16.2. New York; 2002. Available from: http://www.ncbi.nlm.nih.gov/books/NBK22395/.
no DOI — not checkedYang ST, Zhao JB. Adaptive engineering of Clostridium for increased butanol production. United States Patent 8450093.
no DOI — not checkedDong H, Tao W, Dai Z, Yang L, Gong F, Zhang Y, Li Y. Biobutanol. Adv Biochem Eng Biotechnol. 2012;128:85–100.
no DOI — not checkedHucka M, Bergmann FT, Drager A, Hoops S, Keating SM, Le Novere N, Myers CJ, Olivier BG, Sahle S, Schaff JC, et al. Systems biology markup language (SBML) level 2 version 5: structures and facilities for nodel definitions. J Integr Bioinform. 2015;12:271.
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